Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model.

This study investigated the application of the natural decomposition method for solving the Gray-Scott reaction-diffusion model, which is known for its complex nonlinearities and strong coupling between chemical species. A general form of the natural decomposition method was developed to address the...

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Main Author: Nsingwire, Godwin
Format: Thesis
Language:English
Published: Kabale University 2024
Subjects:
Online Access:http://hdl.handle.net/20.500.12493/2667
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author Nsingwire, Godwin
author_facet Nsingwire, Godwin
author_sort Nsingwire, Godwin
collection KAB-DR
description This study investigated the application of the natural decomposition method for solving the Gray-Scott reaction-diffusion model, which is known for its complex nonlinearities and strong coupling between chemical species. A general form of the natural decomposition method was developed to address these complexities, providing a systematic framework for analyzing the model's behavior. By decomposing the nonlinear partial differential equations into a series of simpler equations, the method facilitates both analytical and numerical solutions, allowing for a detailed examination of the spatiotemporal patterns that emerge. Numerical techniques, such as the Newton-Raphson method, were integrated to handle the nonlinear algebraic equations, particularly those involving the term𝑢𝑣2. The results show that the natural decomposition method effectively captures the intricate dynamics of the Gray-Scott model, demonstrating good convergence for specified initial conditions and parameter values. Sensitivity analysis further revealed that even small changes in initial conditions could significantly affect chemical concentration patterns, underscoring the need for accurate parameter settings. While this study employed a fixed parameter approach, it also recommends exploring the infinite series solution to provide a more comprehensive understanding of the system's dynamics. Overall, the natural decomposition method proves to be a robust and versatile tool, offering both analytical clarity and computational efficiency in modeling complex chemical and biological systems governed by nonlinear partial differential equations.
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spelling oai:idr.kab.ac.ug:20.500.12493-26672024-12-31T00:01:47Z Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model. Nsingwire, Godwin Application Natural Decomposition Method Partial Differential Equations Gray-Scott Model This study investigated the application of the natural decomposition method for solving the Gray-Scott reaction-diffusion model, which is known for its complex nonlinearities and strong coupling between chemical species. A general form of the natural decomposition method was developed to address these complexities, providing a systematic framework for analyzing the model's behavior. By decomposing the nonlinear partial differential equations into a series of simpler equations, the method facilitates both analytical and numerical solutions, allowing for a detailed examination of the spatiotemporal patterns that emerge. Numerical techniques, such as the Newton-Raphson method, were integrated to handle the nonlinear algebraic equations, particularly those involving the term𝑢𝑣2. The results show that the natural decomposition method effectively captures the intricate dynamics of the Gray-Scott model, demonstrating good convergence for specified initial conditions and parameter values. Sensitivity analysis further revealed that even small changes in initial conditions could significantly affect chemical concentration patterns, underscoring the need for accurate parameter settings. While this study employed a fixed parameter approach, it also recommends exploring the infinite series solution to provide a more comprehensive understanding of the system's dynamics. Overall, the natural decomposition method proves to be a robust and versatile tool, offering both analytical clarity and computational efficiency in modeling complex chemical and biological systems governed by nonlinear partial differential equations. 2024-12-30T18:30:16Z 2024-12-30T18:30:16Z 2024 Thesis Nsingwire, Godwin (2024). Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model. Kabale: Kabale University. http://hdl.handle.net/20.500.12493/2667 en Attribution-NonCommercial-NoDerivs 3.0 United States http://creativecommons.org/licenses/by-nc-nd/3.0/us/ application/pdf Kabale University
spellingShingle Application
Natural Decomposition Method
Partial Differential Equations
Gray-Scott Model
Nsingwire, Godwin
Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model.
title Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model.
title_full Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model.
title_fullStr Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model.
title_full_unstemmed Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model.
title_short Application of the Natural Decomposition Method to Strongly Coupled Partial Differential Equations: The Gray-Scott Model.
title_sort application of the natural decomposition method to strongly coupled partial differential equations the gray scott model
topic Application
Natural Decomposition Method
Partial Differential Equations
Gray-Scott Model
url http://hdl.handle.net/20.500.12493/2667
work_keys_str_mv AT nsingwiregodwin applicationofthenaturaldecompositionmethodtostronglycoupledpartialdifferentialequationsthegrayscottmodel